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在急性 CTCF、cohesin、WAPL 或 YY1 缺失的情况下,增强子-启动子相互作用和转录在很大程度上得以维持。

Enhancer-promoter interactions and transcription are largely maintained upon acute loss of CTCF, cohesin, WAPL or YY1.

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, Berkeley, CA, USA.

Li Ka Shing Center for Biomedical and Health Sciences, University of California, Berkeley, Berkeley, CA, USA.

出版信息

Nat Genet. 2022 Dec;54(12):1919-1932. doi: 10.1038/s41588-022-01223-8. Epub 2022 Dec 5.

Abstract

It remains unclear why acute depletion of CTCF (CCCTC-binding factor) and cohesin only marginally affects expression of most genes despite substantially perturbing three-dimensional (3D) genome folding at the level of domains and structural loops. To address this conundrum, we used high-resolution Micro-C and nascent transcript profiling in mouse embryonic stem cells. We find that enhancer-promoter (E-P) interactions are largely insensitive to acute (3-h) depletion of CTCF, cohesin or WAPL. YY1 has been proposed as a structural regulator of E-P loops, but acute YY1 depletion also had minimal effects on E-P loops, transcription and 3D genome folding. Strikingly, live-cell, single-molecule imaging revealed that cohesin depletion reduced transcription factor (TF) binding to chromatin. Thus, although CTCF, cohesin, WAPL or YY1 is not required for the short-term maintenance of most E-P interactions and gene expression, our results suggest that cohesin may facilitate TFs to search for and bind their targets more efficiently.

摘要

目前尚不清楚为什么急性耗尽 CTCF(CCCTC 结合因子)和黏合蛋白仅轻微影响大多数基因的表达,尽管它们在域和结构环水平上显著扰乱了三维(3D)基因组折叠。为了解决这个难题,我们在小鼠胚胎干细胞中使用了高分辨率 Micro-C 和新生转录谱分析。我们发现,增强子-启动子(E-P)相互作用对 CTCF、黏合蛋白或 WAPL 的急性(3 小时)耗竭基本不敏感。YY1 已被提议作为 E-P 环的结构调节剂,但急性 YY1 耗竭对 E-P 环、转录和 3D 基因组折叠的影响也很小。引人注目的是,活细胞、单分子成像显示,黏合蛋白耗竭降低了转录因子(TF)与染色质的结合。因此,尽管 CTCF、黏合蛋白、WAPL 或 YY1 不需要短期维持大多数 E-P 相互作用和基因表达,但我们的结果表明,黏合蛋白可能有助于 TF 更有效地搜索和结合其靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d6ab/9729117/fe83c6c23aeb/41588_2022_1223_Fig1_HTML.jpg

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